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Published on: March 21, 2014
Changes in ion channel expression accompany cell cycle progression of spinal cord astrocytes
1Department of Neurobiology, University of Alabama, Birmingham, Alabama, USA. macfarlan@nrc.uab.edu
Abstract:
Arrest of spinal cord astrocytes at defined stages of the cell cycle clock causes significant changes in the expression of voltage-activated Na(+) and K(+) currents. Arrest of actively proliferating astrocytes in G1/G0 by all-trans-retinoic acid induces premature expression of inwardly rectifying K(+) currents (IK(IR)) typically expressed only in differentiated astrocytes. By contrast, arrest in S phase by ara-C or Aphidicolin leads to a greater than twofold increase in "delayed" outwardly rectifying currents (IK(D)) and a concomitant decrease in IK(IR). Pharmacological blockade of IK(D) by TEA and 4AP caused proliferating astrocytes to arrest in G0/G1, suggesting that activity of these channels is required for G1/S checkpoint progression. Conversely, in quiescent astrocytes, inhibition of IK(IR) by 30 microM BaCl(2) led to an increase in astrocyte proliferation and to an increase in the number of cells in S phase from 5% to 26%. These data suggest that a downregulation of K(IR) promotes cell cycle progression through the G1/S checkpoint. Blockade of IK(IR) in actively proliferating cells, however, leads to an accumulation in G2/M, suggesting that reappearance of this current may be critical for progression beyond DNA synthesis. Interestingly, Na(+) currents (INa(+)) are increased greater than fourfold in S phase-arrested cells, yet their pharmacological blockade by TTX has no effect on cell cycle progression. However, the resting membrane potential of S phase-arrested cells increases profoundly, and manipulation of membrane potential by the application of low concentrations of ouabain, or reduction of extracellular potassium, induces the accumulation of quiescent astrocytes in S phase of the cell cycle, suggesting that either depolarization or intracellular sodium, or both, play an important role in promoting astrocyte proliferation.
Insights
Cell cycle arrest in spinal cord astrocytes alters ion channel expression. Downregulation of inwardly rectifying K(+) currents (IK(IR)) promotes proliferation, while their reappearance is critical for cell cycle progression.
Area of Science:
- Neuroscience
- Cell Biology
- Astrocytes
Background:
- Astrocytes play crucial roles in the central nervous system.
- Ion channel expression in astrocytes is dynamic and can change with cell state.
- Understanding astrocyte cell cycle regulation is vital for neurodevelopment and repair.
Purpose of the Study:
- To investigate the relationship between astrocyte cell cycle progression and ion channel expression.
- To determine the role of specific potassium (K+) and sodium (Na+) currents in astrocyte cell cycle control.
Main Methods:
- Astrocytes were arrested at specific cell cycle phases (G1/G0, S, G2/M) using pharmacological agents (all-trans-retinoic acid, ara-C, Aphidicolin).
- Voltage-activated Na+ and K+ currents were measured using electrophysiological techniques.
- Pharmacological blockers (TEA, 4AP, BaCl2, TTX) and membrane potential modifiers (ouabain, altered extracellular potassium) were used to assess current function and cell cycle effects.
Main Results:
- Arrest in G1/G0 induced premature inwardly rectifying K+ currents (IK(IR)).
- Arrest in S phase increased delayed outwardly rectifying K+ currents (IK(D)) and decreased IK(IR).
- IK(D) blockade caused G0/G1 arrest, while IK(IR) inhibition increased proliferation and S phase entry.
- Na+ currents (INa+) increased in S phase-arrested cells, but TTX blockade had no effect on cell cycle progression.
- Membrane depolarization or increased intracellular sodium promoted S phase entry in quiescent astrocytes.
Conclusions:
- Ion channel activity, particularly K+ currents, significantly influences astrocyte cell cycle progression.
- Downregulation of IK(IR) facilitates entry into and progression through the cell cycle.
- Reappearance of IK(IR) may be essential for exiting the cell cycle after DNA synthesis.
- Membrane potential and intracellular sodium levels are critical regulators of astrocyte proliferation.
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